Simulated a lunar rover suspension with linear and nonlinear springs and dampers using RK4, then found safe operating frequencies with transmissibility analysis.
Simulated and analyzed a lunar rover suspension as a mass-spring-damper system with linear and nonlinear components, solving coupled second-order differential equations for displacement, velocity, and force over time with the 4th-order Runge-Kutta method.
What I did
- Modeling: wrote function handles for linear and nonlinear spring and damper models and built them into a full simulation.
- Convergence: designed a dynamic timestep adjustment to hold accuracy while saving computation, with error metrics to confirm tolerance.
- Frequency response: computed displacement and force transmissibility versus frequency to find safe operating ranges, using golden-section search to locate the damped natural frequency.
- Reporting: produced clear plots of displacement and force amplitude versus frequency.
Result
Identified the frequency ranges where the suspension operates safely in the lunar environment.